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Design and Validation of an Articulated Sensor Carrier to Improve the Automatic Pipeline Inspection

机译:改进自动管道检测的铰接式传感器支架的设计与验证

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摘要

Pipeline inspection gauges (PIGs) carry out automatic pipeline inspection with nondestructive testing (NDT) technologies like ultrasound, magnetic flux leakage, and eddy current. The ultrasonic straight beam allows technicians to determine the wall thickness of the pipeline through the time of flight diffraction (TOFD), providing the pipeline reconstruction and allowing the detection of several defects like dents or corrosion. If the pipeline is of a long distance, then the inspection process is automatic, and the fluid pressure pushes the PIG through the pipeline system. In this case, the PIG velocity and its axial alignment with the pipeline cannot be controlled. The PIG geometry, the pipeline deformations, and the girth welds cause a continuous chattering when the PIG is running, removing the transducers perpendicularity with the inspection points, which means that some echoes cannot be received. To reduce this problem, we propose a novel method to design a sensor carrier that takes into account the angularity and distance effects to acquire the straight beam echoes. The main advantage of our sensor carrier is that it can be used in concave and convex pipeline sections through geometric adjustments, which ensure that it is in contact with the inner pipe wall. Our improvement of the method is the characterization of the misalignment between the internal wall of the pipeline and the transducer. Later, we analyzed the conditions of the automatic pipeline inspection, the existing recommendations in state-of-the-art technology, and the different mechanical scenarios that may occur. For the mechanical design, we developed all the equations and rules. At the signal processing level, we set a fixed gain in the filtering step to obtain the echoes in a defined distance range without saturating the acquisition channels. For the validation, we compared through the mean squared error (MSE) our sensor carrier in a straight pipe section and a pipe elbow of steel versus other sensor carrier configurations. Finally, we present the design parameters for the development of the sensor carrier for different pipeline diameters.
机译:管道检测仪(PIG)使用无损检测(NDT)技术(例如超声波,磁通量泄漏和涡流)执行自动管道检测。超声波直射束使技术人员能够通过飞行时间衍射(TOFD)来确定管道的壁厚,从而提供管道重建并允许检测一些缺陷,例如凹痕或腐蚀。如果管道距离较远,则检查过程是自动的,并且流体压力将PIG推入管道系统。在这种情况下,PIG速度及其与管道的轴向对齐无法控制。当PIG运行时,PIG的几何形状,管道变形和环焊缝会引起连续震颤,从而消除了换能器与检查点的垂直度,这意味着无法接收到某些回波。为减少此问题,我们提出了一种新颖的方法来设计传感器载体,该方法考虑了角度和距离效应来获取直射束回波。我们的传感器支架的主要优点是,可以通过几何调整将其用于凹凸管道部分,以确保它与内管壁接触。我们对该方法的改进是对管道内壁和换能器之间未对准特征的表征。后来,我们分析了自动管道检查的条件,最新技术的现有建议以及可能发生的不同机械情况。对于机械设计,我们开发了所有方程式和规则。在信号处理级别,我们在滤波步骤中设置了固定的增益,以在定义的距离范围内获得回波而不会饱和采集通道。为了进行验证,我们通过均方误差(MSE)将我们的传感器支架在直管段和钢制弯头中与其他传感器支架配置进行了比较。最后,我们介绍了用于不同管道直径的传感器支架开发的设计参数。

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